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Stjepanovic, G.

Publications and source records attributed to Stjepanovic, G..

5 recordsLinked to original sources

Mechanism of D-type cyclins recognition by the AMBRA1 E3 ligase receptor

AMBRA1 is a tumour suppressor protein that functions as a substrate receptor in the ubiquitin conjugation system and regulates the stability of D-type cyclins and cell proliferation. Here, we present the cryo-EM structure of cyclin D1 bound AMBRA1-DDB1 complex at 3.5 [A] resolution. The structure reveals a substrate interaction surface on the AMBRA1 WD40 domain that specifically binds to the C-terminal region of D-type cyclins. This interaction is dependent on the phosphorylation of Thr286 residue in the C-terminal phosphodegron site of D-type cyclins. The phosphodegron motif folds into a turn-like conformation followed by a 310 helix that promotes its assembly with AMBRA1. Additionally, we show that AMBRA1 mutants, which are defective in cyclin D1 binding, lead to cyclin D1 accumulation and DNA damage. Understanding the AMBRA1-D-type cyclins structure enhances the knowledge of the molecular mechanisms that govern the cell cycle control and may lead to new therapeutic approaches for cancers linked to abnormal cyclin D activity.

biochemistry↗

Structural basis for membrane remodelling by the AP5:SPG11-SPG15 complex

The human spastizin (spastic paraplegia 15, SPG15) and spatacsin (spastic paraplegia 11, SPG11) complex is involved in cargo sorting from late endosomes to the Golgi, and mutations in these two proteins are linked with hereditary autosomal recessive spastic paraplegia (HSP). SPG11-SPG15 can cooperate with evolutionarily ancient fifth adaptor protein complex (AP5). We employed cryo-electron microscopy and in silico predictions to investigate the structural assemblies of SPG11-SPG15 and AP5:SPG11-SPG15 complex. The W-shaped SPG11-SPG15 intertwined in a head-to-head fashion, and the N-terminal region of SPG11 is required for AP5 complex interaction and assembly. The AP5 complex is in a super open conformation. We employed in vitro lipid binding assays and cellular localization analysis to investigate AP5:SPG11-SPG15 membrane binding properties. Here we solve a major problem in understanding AP5:SPG11-SPG15 function in autophagic lysosome reformation (ALR), using a fully reconstituted system. We reveal that the AP5:SPG11-SPG15 complex binds PI3P molecules, can sense membrane curvature and drive membrane remodelling in vitro. These studies provide key insights into the structure and function of the spastic paraplegia AP5:SPG11-SPG15 complex, which is essential for the initiation of autolysosome tubulation.

biochemistry↗

Enhanced Recognition of a Herbal Compound Epiberberine by a DNA Quadruplex-Duplex Structure

The small molecule epiberberine (EPI) is a natural alkaloid with versatile bioactivities against several diseases, including cancer and bacterial infection. EPI can induce the formation of a unique binding pocket at the 5' side of a human telomeric G-quadruplex (HTG) sequence Q4, resulting in a nanomolar binding affinity (KD approximately 26 nM) with significant fluorescence enhancement upon binding. It is important to understand (1) how EPI binding affects HTG structural stability and (2) how enhanced EPI binding may be achieved through the engineering of the DNA binding pocket. In this work, the EPI binding-induced HTG structure stabilization effect was probed by a peptide nucleic acid (PNA) invasion assay in combination with a series of biophysical techniques. We show that the PNA invasion-based method may be useful for the characterization of compounds binding to DNA (and RNA) structures in physiological conditions without the need to vary the solution temperature or buffer components, which are typically needed for structural stability characterization. Importantly, the combination of theoretical modeling and experimental quantification allows us to successfully engineer the Q4 derivative Q4-ds-A by a simple extension of a duplex structure to Q4 at the 5' end. Q4-ds-A is a superb EPI binder with a KD of 8 nM, with the binding enhancement achieved through the preformation of a binding pocket and a reduced dissociation rate. The tight binding of Q4 and Q4-ds-A with EPI allows us to develop a novel magnetic bead-based affinity purification system to effectively extract EPI from Rhizoma coptidis (Huang Lian) extracts.

biochemistry↗

Structural basis for lipid transfer by the ATG2A-ATG9A complex

Autophagy is characterized by the formation of double-membrane vesicles called autophagosomes. ATG2A and ATG9A play an essential role in autophagy by mediating lipid transfer and re-equilibration between membranes for autophagosome formation. Here we report the cryo-EM structures of human ATG2A-WIPI4 complex at 3.2 [A], and ATG2A-WIPI4-ATG9A complex at 7 [A] resolution. The ATG2A structure is characterized by a central hydrophobic cavity formed by a network of {beta}-strands that facilitates lipid transfer, and highly flexible N- and C-terminal domains. Molecular dynamics simulations of the ATG2A N-terminal domain revealed the mechanism of lipid-extraction from the donor membranes while the ATG2A-ATG9A complex structure provides insights into the later stages of the lipid transfer reaction. ATG9A-ATG2A structural analysis revealed a 1:1 stoichiometry, directly aligning the ATG9A lateral pore with ATG2A lipid transfer cavity, hence allowing for a direct transfer of lipids from ATG2A. The ATG9A trimer can interact with both N- and C-terminal tip of rod-shaped ATG2A. Cryo-electron tomography of ATG2A-liposome binding states shows that ATG2A tethers lipid vesicles at different orientations. In summary, this study provides a molecular basis for the growth of the phagophore membrane, and lends structural insights into spatially coupled lipid transport and re-equilibration during autophagosome formation.

biochemistry↗

Structural basis for substrate recruitment by AMBRA1 E3 ligase receptor

AMBRA1 is a tumor suppressor protein that functions as a substrate receptor of the ubiquitin conjugation system as part of autophagy and cell-cycle regulatory network. The highly intrinsic disorder of AMBRA1 has so far precluded its structural determination. To solve this problem, we analyzed the domain organization and dynamics of AMBRA1 using hydrogen deuterium exchange mass spectrometry (HDX-MS). High deuterium uptake indicates that AMBRA1 is a dynamic and largely unstructured protein, and can be stabilized upon interaction with DDB1, the adaptor of the Cullin4A/B E3 ligase complex. Here we present the cryo-EM structure of AMBRA1 in complex with DDB1 at 3 [A] resolution. The structure shows that parts of N- and C-terminal structural regions in AMBRA1 fold together into the highly dynamic WD40 domain, and reveals how DDB1 engages with AMBRA1 to create a binding scaffold for substrate recruitment. AMBRA1 uses its N-terminal helix-loop-helix and WD40 domain to bind the double-propeller fold of DDB1, whereas different regions target the specific cellular substrates for ubiquitination. We also demonstrate that DDB1 binding-defective AMBRA1 mutants prevent ubiquitination of the substrate Cyclin D1 in vitro and decreased number of autophagosomes in the cells. Together, these results provide structural insights into AMBRA1-ubiquitin ligase complex and suggests a mechanism by which the AMBRA1 acts as a hub involved in various physiological processes.

biochemistry↗